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Prediction of In-Hospital Atrial Fibrillation After Acute Myocardial Infarction

  • Matteo Bulloni*
  • , Guadalupe García-Isla
  • , Pedro Moreno-Sánchez
  • , Erica Rurali
  • , Alice Bonesi
  • , Mattia Chiesa
  • , Pablo J. Werba
  • , Giancarlo Marenzi
  • , Valentina Corino
  • , Claudio Tondo
  • , Mark van Gils
  • , Linda Pattini
  • , Luca Mainardi
  • *Tämän työn vastaava kirjoittaja

Tutkimustuotos: LukuTieteellinen

1 Lataukset (Pure)

Abstrakti

Atrial fibrillation (AF) is a relatively frequent complication of acute myocardial infarction (AMI). While AF prediction has been extensively studied, the identification of risk factors for early, new-onset AF (NOAF) after AMI in the intensive cardiac care unit (ICCU) remains less explored. Specifically, to our knowledge, there are no reported attempts at predicting in-hospital NOAF after AMI using machine learning. In this study, we developed a machine learning model to predict in-hospital NOAF following AMI. The dataset used for model development included 2445 consecutive AMI patients admitted to the ICCU of Centro Cardiologico Monzino, out of which 241 (9.9%) developed NOAF prior to ICCU discharge. Fifty-six features encompassing demographic and clinical variables were retrospectively collected and analysed. Several data balancing, feature selection and classification techniques were evaluated and compared by means of area under the ROC curve (AUROC) through nested cross-validation. The best-performing model combined an undersampling step, based on the Edited Nearest Neighbors algorithm, a mutual-information-based feature selection and a logistic regression model. The model achieved an AUROC of 0.765 (95% CI: 0.732 - 0.795), exploiting both known and previously unreported markers.

AlkuperäiskieliEnglanti
OtsikkoCinC 2024 : Program & Final Papers
KustantajaComputing in Cardiology
Sivut1-4
Vuosikerta51
DOI - pysyväislinkit
TilaJulkaistu - 2024
OKM-julkaisutyyppiB2 Kirjan tai muun kokoomateoksen osa
TapahtumaComputing in cardiology conference - Karlsrure, Saksa
Kesto: 8 syysk. 202411 syysk. 2024

Julkaisusarja

NimiComputing in cardiology
KustantajaComputing in Cardiology
ISSN (elektroninen)2325-887X

Conference

ConferenceComputing in cardiology conference
Maa/AlueSaksa
KaupunkiKarlsrure
Ajanjakso8/09/2411/09/24

Rahoitus

This work is funded by the project PerCard (Person-alised Prognostics and Diagnostics for Improved Decision Support in Cardiovascular Diseases) in ERA PerMed supported by the Research Council of Finland (decision number 351846) and by the Fondazione Regionale della Ricerca Biomedica (FRRB).

!!ASJC Scopus subject areas

  • Yleinen tietojenkäsittelytiede
  • Cardiology and Cardiovascular Medicine

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